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光子拓扑绝缘体中的费米子时间反演对称性。

Fermionic time-reversal symmetry in a photonic topological insulator.

作者信息

Maczewsky Lukas J, Höckendorf Bastian, Kremer Mark, Biesenthal Tobias, Heinrich Matthias, Alvermann Andreas, Fehske Holger, Szameit Alexander

机构信息

Institut für Physik, Universität Rostock, Rostock, Germany.

Institut für Physik, Universität Greifswald, Greifswald, Germany.

出版信息

Nat Mater. 2020 Aug;19(8):855-860. doi: 10.1038/s41563-020-0641-8. Epub 2020 Mar 23.

Abstract

Much of the recent attention directed towards topological insulators is motivated by their hallmark feature of protected chiral edge states. In electronic (or fermionic) topological insulators, these states originate from time-reversal symmetry and allow carriers with opposite spin-polarization to propagate in opposite directions at the edge of an insulating bulk. By contrast, photonic (or bosonic) systems are generally assumed to be precluded from supporting edge states that are intrinsically protected by time-reversal symmetry. Here, we experimentally demonstrate counter-propagating chiral states at the edge of a time-reversal-symmetric photonic waveguide structure. The pivotal step in our approach is the design of a Floquet driving protocol that incorporates effective fermionic time-reversal symmetry, enabling the realization of the photonic version of an electronic topological insulator. Our findings allow for fermionic properties to be harnessed in bosonic systems, thereby offering alternative opportunities for photonics as well as acoustics, mechanical waves and cold atoms.

摘要

近期对拓扑绝缘体的诸多关注源于其受保护的手性边缘态这一标志性特征。在电子(或费米子)拓扑绝缘体中,这些态源自时间反演对称性,使得具有相反自旋极化的载流子能够在绝缘本体的边缘沿相反方向传播。相比之下,光子(或玻色子)系统通常被认为无法支持由时间反演对称性内在保护的边缘态。在此,我们通过实验证明了在时间反演对称的光子波导结构边缘存在反向传播的手性态。我们方法的关键步骤是设计一种弗洛凯驱动协议,该协议纳入了有效的费米子时间反演对称性,从而实现电子拓扑绝缘体的光子版本。我们的发现使得费米子特性能够在玻色子系统中得到利用,进而为光子学以及声学、机械波和冷原子提供了替代机会。

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